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大肠杆菌天冬氨酸转氨甲酰酶调节链中的单个突变导致了极端的T态结构。

A single mutation in the regulatory chain of Escherichia coli aspartate transcarbamoylase results in an extreme T-state structure.

作者信息

Williams M K, Stec B, Kantrowitz E R

机构信息

Merkert Chemistry Center, Boston College, Chestnut Hill, MA 02167, USA.

出版信息

J Mol Biol. 1998 Aug 7;281(1):121-34. doi: 10.1006/jmbi.1998.1923.

Abstract

Kinetic analysis of a mutant version of Escherichia coli aspartate transcarbamoylase in which Thr82 in the regulatory chain (Thr82r) was replaced by Ala results in a shift in the T <==> R equilibrium towards the T-state. In order to understand the structural determinants of this T-state stabilization, the X-ray structure of the unliganded Thr82r-->Ala enzyme was determined at 2. 6 A resolution and refined to a crystallographic residual of 0.175. The structure of the mutant r1 regulatory chain is more similar to that of the r6 regulatory chain than observed for the wild-type enzyme, resulting in a more symmetric structure. Furthermore, the structural changes in the mutant enzyme appears to occur only in the r1 chain, while the r6 chain is almost identical in structure to that of the r6 chain of the wild-type enzyme. The structure of the mutant enzyme exhibits alterations in the subunit interfaces between the regulatory and catalytic chains, as well as in the interface between the allosteric and zinc domains within the regulatory chain. Moreover, the regulatory dimers are rotated around their respective 2-fold axes approximately 1 degrees beyond the rotation which occurs in the wild-type T-state enzyme. The structural analysis indicates that the enzyme is an "extreme" T-state, in which a larger rotation of the regulatory dimers is required for the T to R transition compared to the wild-type enzyme. This extreme T-state structure correlates well with the kinetic parameters determined for the mutant enzyme, showing a stabilized T-state. Furthermore, the structural analysis of the mutant enzyme suggests that replacement of Thr82r with Ala alters the local conformation of the nucleotide binding pocket and therefore offers a plausible explanation for the reduced affinity of the enzyme for nucleotides.

摘要

对大肠杆菌天冬氨酸转氨甲酰酶的一个突变体进行动力学分析,该突变体中调节链上的苏氨酸82(Thr82r)被丙氨酸取代,结果导致T <==> R平衡向T态偏移。为了理解这种T态稳定的结构决定因素,在2.6埃分辨率下测定了未结合配体的Thr82r→Ala酶的X射线结构,并将其精修至晶体学残余为0.175。与野生型酶相比,突变型r1调节链的结构与r6调节链的结构更相似,从而产生了更对称的结构。此外,突变酶中的结构变化似乎仅发生在r1链中,而r6链的结构与野生型酶的r6链几乎相同。突变酶的结构在调节链与催化链之间的亚基界面以及调节链内变构域与锌域之间的界面上都表现出改变。此外,调节二聚体围绕其各自的二次轴旋转,比野生型T态酶中的旋转大约多1度。结构分析表明该酶处于“极端”T态,与野生型酶相比,T向R转变需要调节二聚体有更大的旋转。这种极端T态结构与为突变酶测定的动力学参数很好地相关,显示出稳定的T态。此外,对突变酶的结构分析表明,用丙氨酸取代Thr82r改变了核苷酸结合口袋的局部构象,因此为该酶对核苷酸亲和力降低提供了一个合理的解释。

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